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通过激光写入制备的图案化金刚石砧座,用于在压力下对薄量子材料进行电输运测量。

Patterned diamond anvils prepared via laser writing for electrical transport measurements of thin quantum materials under pressure.

作者信息

Ku Che-Hsuan, Liu Xinyou, Xie Jianyu, Zhang W, Lam Siu Tung, Chen Y, Zhou Xuefeng, Zhao Yusheng, Wang Shanmin, Yang Sen, Lai Kwing To, Goh Swee K

机构信息

Department of Physics, The Chinese University of Hong Kong, Shatin N.T., Hong Kong, China.

Department of Physics, Southern University of Science and Technology, Shenzhen, Guangdong, China.

出版信息

Rev Sci Instrum. 2022 Aug 1;93(8):083912. doi: 10.1063/5.0098226.

Abstract

Quantum materials exhibit intriguing properties with important scientific values and huge technological potential. Electrical transport measurements under hydrostatic pressure have been influential in unraveling the underlying physics of many quantum materials in bulk form. However, such measurements have not been applied widely to samples in the form of thin flakes, in which new phenomena can emerge, due to the difficulty in attaching fine wires to a thin sample suitable for high-pressure devices. Here, we utilize a home-built direct laser writing system to functionalize a diamond anvil to directly integrate the capability of conducting electrical transport measurements of thin flakes with a pressure cell. With our methodology, the culet of a diamond anvil is equipped with a set of custom-designed conducting tracks. We demonstrate the superiority of these tracks as electrodes for the studies of thin flakes by presenting the measurement of pressure-enhanced superconductivity and quantum oscillations in a flake of MoTe.

摘要

量子材料展现出具有重要科学价值和巨大技术潜力的有趣特性。静水压力下的电输运测量对于揭示许多块状量子材料的潜在物理机制具有重要影响。然而,由于难以将细导线连接到适用于高压装置的薄样品上,此类测量尚未广泛应用于薄片形式的样品,而在薄片中可能会出现新现象。在此,我们利用自行搭建的直接激光写入系统对金刚石砧座进行功能化,以将薄片的电输运测量能力与压力单元直接集成。采用我们的方法,金刚石砧座的尖部配备了一组定制设计的导电轨道。通过展示对MoTe薄片中压力增强超导性和量子振荡的测量,我们证明了这些轨道作为薄片研究电极的优越性。

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